Separate chinese
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1 changed files with 42 additions and 8 deletions
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@ -18,16 +18,50 @@ def download_and_convert(output_path: Path) -> None:
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df = pl.read_csv(response.content)
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print(f"Raw shape: {df.head(100)}")
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# Keep only broad ethnicity categories (5+1), exclude "All" totals
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df = df.filter(
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(pl.col("Ethnicity_type") == "ONS 2021 5+1") & (pl.col("Ethnicity") != "All")
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# Use the detailed 19+1 breakdown to get sub-categories for Asian ethnicity,
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# then aggregate back to the broad groups plus South Asian / East Asian split.
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detailed = df.filter(
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(pl.col("Ethnicity_type") == "ONS 2021 19+1") & (pl.col("Ethnicity") != "All")
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)
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# Pivot: one row per local authority, columns = ethnicity percentages
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wide = df.pivot(
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on="Ethnicity",
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index="Geography_code",
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values="Value1",
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# Map detailed categories to our output groups
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group_map = {
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# White
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"White British": "White",
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"White Irish": "White",
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"Gypsy Or Irish Traveller": "White",
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"Roma": "White",
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"Any Other White Background": "White",
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# South Asian
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"Indian": "South Asian",
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"Pakistani": "South Asian",
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"Bangladeshi": "South Asian",
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"Any Other Asian Background": "South Asian",
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# East Asian
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"Chinese": "East Asian",
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# Black
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"Black African": "Black",
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"Black Caribbean": "Black",
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"Any Other Black Background": "Black",
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# Mixed
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"Mixed White And Asian": "Mixed",
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"Mixed White And Black African": "Mixed",
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"Mixed White And Black Caribbean": "Mixed",
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"Any Other Mixed/Multiple Ethnic Background": "Mixed",
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# Other
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"Arab": "Other",
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"Any Other Ethnic Background": "Other",
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}
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detailed = detailed.with_columns(
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pl.col("Ethnicity").replace_strict(group_map).alias("group"),
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)
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# Sum percentages within each group per local authority
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wide = (
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detailed.group_by("Geography_code", "group")
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.agg(pl.col("Value1").sum().round(1))
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.pivot(on="group", index="Geography_code", values="Value1")
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)
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# Rename columns to be descriptive
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